Disclosed are embodiments related to devices and methods for providing efficient amplifier operation.
Modern communication systems struggle with energy efficiency. Reduction of peak-to-average power ratio (PAPR) is a common measure taken for improvement. The reduction of the PAPR, however, comes at the cost of increased computational complexity, latency, and error vector magnitude (EVM) in radio channel. For example, existing solutions of reducing the PAPR may result in increased EVM, which bottlenecks the performance of a radio transmitter in terms of throughput.
As higher modulation densities are introduced to achieve greater data-rates, potential reduction of the PAPR shrinks and potential energy saving from reducing the PAPR is therefore reduced. Accordingly, there is a need to increase average output power of a radio transmitter while operating the radio transmitter more efficiently.
According to some embodiments of this disclosure, a radio transceiver is provided. The radio transceiver may include a radio transmitter comprising a digital pre-distortion (DPD) unit, a power amplifier (PA), and a limiter between the output of the DPD and the input of the PA. By including the limiter between the DPD unit and the PA, average output power and operating efficiency of the PA may be increased while allowing the PA to perform closer to the lower bound of normalized mean squared error (NMSE).
According to some embodiments, there is provided a process performed by a radio transceiver device. The process may begin with receiving an input signal. The process may also include distorting the received input signal, thereby producing a distorted input signal, producing a limited signal based on the distorted input signal, and amplifying the limited signal, thereby producing an amplified limited signal.
The accompanying drawings, which are incorporated herein and form part of the specification, illustrate various embodiments.
The wireless communication system 100 may be any of Second/Third Generation (2G/3G) network, 3G Long Term Evolution (LTE) network, 4G network, Worldwide interoperability of Microwave Access (WiMAX) network, Wireless Local Area Network (WLAN), Fifth Generation Mobile network (5G), or any combination thereof
The base station 102 and/or the UE 104 may comprise a radio transmitter 150 shown in
As shown in
In operating a power amplifier, it is desirable to improve the operating efficiency of the power amplifier while reducing distortion caused by the operation of the power amplifier. One way of improving the operating efficiency and reducing the distortion is using a crest-factor reduction (CFR) unit and a digital pre-distortion (DPD) unit.
For example, as shown in
In the exemplary radio transmitter 200 shown in
In
The CFR unit 204 is configured to receive the input signal yd from the modulation unit 202 and to reduce the peak-to-average ratio of the input signal yd, thereby producing a reduced signal (or a clipped signal) ycfr that meets a desired crest factor requirement. For example, as shown in
The CFR unit 204 may be designed in various ways.
The clipping unit 602 may perform a clipping function on an inputted signal y, and thus produces a clipped signal yc. As shown in
Accordingly, in the exemplary CFR unit 204, the clipped signal yc is fed to the filtering unit 604. The filtering unit 604 may perform the function of restricting the out-of-band leakage as shown in
The DPD unit 206 may be configured to receive the reduced signal ycfr and to apply a distortion process to the reduced signal ycfr, thereby producing a distorted reduced signal u such that the signal outputted from the PA 208 becomes closer to the signal inputted to the DPD unit 206. Here, the DPD unit 206 aims to minimize the error of the output of the PA 208 towards ycfr instead of yd. Thus, as shown in
As shown in
The radio transmitter 300 may include a modulation unit 302, a DPD unit 304, a limiter 306, and a PA 308. Each of the modulation unit 302, the DPD unit 304, the limiter 306, and the PA 308 may be formed of a plurality of parts or one integrated component.
Like the modulation unit 202, the modulation unit 302 may be an OFDM unit or other modulator. The DPD unit 304 is configured to receive the signal yd generated by the modulation unit 302 and distort the received signal yd, thereby producing a distorted signal ud. According to some embodiments, the DPD unit 304 may distort the received input signal yd by applying a polynominal function to the received input signal. For example, the DPD unit 304 may apply to the received input signal yd the polynominal function of ud=a1yd+a3yd|yd|2+a5yd|yd|4+ . . . , where yd(d=1, . . . ,N) are samples of inputs to the DPD unit 304 and ud(d=1, . . . ,N) are samples of outputs of the DPD unit 304.
According to some embodiments of this disclosure, the coefficients (e.g., a1, a3, a5, . . . ) of the polynominal function may be determined using a learning algorithm (e.g., a regression-based learning). For example, signals outputted from the PA 308 may be used as samples for regression-based learning and the samples are fed back to the DPD unit 304. Based on the received samples, the DPD unit 304 may determine the coefficients (e.g., a1, a3, a5, . . . ) of the polynominal function using the regression-based learning. Example(s) of regression-based learning model of a predistorter is disclosed in C. Eun and E. Powers, “A New Volterra Predistorter Based on the Indirect Learning Architecture”, IEEE Transactions on Signal Processing, vol. 45, no. 1, pp. 223-227, 1997.
In some embodiments of this disclosure, the parameters of the DPD unit 304 may be obtained using the Indirect Learning Architecture (ILA). The indirect learning means that the parameters of the DPD unit 304 are estimated indirectly.
The algorithm used by the DPD unit 304 may adopt a weighted criterion as to not to invert or to compensate samples of which values are above a clipping threshold. If the samples of which values are above the clipping threshold are not weighted (i.e., if they are inverted or compensated), they may have a negative impact on the overall performance of the DPD unit 304.
As shown in
Accordingly, in the radio transmitter 300 shown in
The limiter 306 may receive the distorted input signal ua and generate a limited signal ulim based on the received distorted input signal ud. In generating the limited signal ulim, the limiter 306 may clip the portions of the distorted input signal ud that are equal to or greater than a clipping threshold (denoted A). For example, in
For example, the limiter 306 may apply the following function to the distorted input signal ud to generate the limited signal ulim.
where yin is the input to the limiter 306 and A is the clipping threshold. i∠yin is the expression indicating that the phase of the input signal yin is maintained even after the function is applied to the input signal yin.
The clipping level of the limiter 306 may be calibrated as to fit the compression behavior of the PA 308 for best performance. For example, the limiter may be calibrated to fit the PA's saturation point. If the clipping level is set too low, the available average output power will decrease and energy efficiency will suffer. On the other hand, if the clipping threshold is set too high or if the limiter is not used, the safety of the PA may be at risk. Thus, the limiter 306 protects the PA 306 from high peaks. Also it becomes transparent once the DPD 304 reaches the NMSE-optimal operation.
As shown in
Therefore, the configuration shown in
Step s802 comprises receiving an input signal.
Step s804 comprises distorting the received input signal, thereby producing a distorted input signal.
Step s806 comprises producing a limited signal based on the distorted input signal.
Step s808 comprises amplifying the limited signal, thereby producing an amplified limited signal.
Step s810 comprises transmitting the amplified limited signal.
In some embodiments, producing the limited signal based on the distorted input signal comprises (i) determining whether a value of the distorted input signal is equal to or above a threshold value and (ii) as a result of determining that the value of the distorted input signal is equal to or above the threshold value, clipping the distorted input signal.
In some embodiments, the limited signal is equal to f(yin), where yin is the distorted input signal, and f(yin) is equal to
where A is a threshold value.
In some embodiments, amplifying the limited signal comprises amplifying the limited signal using a power amplifier, and the threshold value is set according to a maximum operating point of the power amplifier.
In some embodiments, distorting the received input signal comprises applying a polynominal function to the received input signal, thereby producing the distorted input signal.
In some embodiments, amplifying the limited signal comprises amplifying the limited signal using a power amplifier, and coefficients of the polynominal function are determined using regression-based learning based on feedbacks from an output of the power amplifier.
In some embodiments, the radio transceiver device is a base station.
In some embodiments, the radio transceiver device is a user equipment (UE).
While various embodiments are described herein, it should be understood that they have been presented by way of example only, and not limitation. Thus, the breadth and scope of this disclosure should not be limited by any of the above-described exemplary embodiments. Moreover, any combination of the above-described elements in all possible variations thereof is encompassed by the disclosure unless otherwise indicated herein or otherwise clearly contradicted by context.
Additionally, while the processes described above and illustrated in the drawings are shown as a sequence of steps, this was done solely for the sake of illustration. Accordingly, it is contemplated that some steps may be added, some steps may be omitted, the order of the steps may be re-arranged, and some steps may be performed in parallel.
Filing Document | Filing Date | Country | Kind |
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PCT/SE2019/050985 | 10/8/2019 | WO |
Number | Date | Country | |
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62869135 | Jul 2019 | US |